This report briefly summarizes recent progress in storm surge forecasts, one of topics discussed during the fourth International Workshop on Tropical Cyclone Landfall Process(IWTCLP 4) held during 5-8 December, 2017. ...This report briefly summarizes recent progress in storm surge forecasts, one of topics discussed during the fourth International Workshop on Tropical Cyclone Landfall Process(IWTCLP 4) held during 5-8 December, 2017. In the workshop, improvement of storm surge forecasting system was mainly discussed with relevance to the problem of estimating the impacts of tropical cyclone landfall.To deal with storm surges, accurate TC condition(predictions and forecasts) as input, reasonable storm surge predictions(with forecasting systems), and effective advisories/warnings(i.e. useful information products) are necessary. Therefore, we need to improve storm surge related matters systematically: input, prediction system, and ef fective information.This report tries to highlight recent progress in the field of storm surges in relation to three key points: improvement in storm surge forecasting models/system, TC conditions as input for storm surge predictions, and informative products for end users.展开更多
A storm surge is an abnormal sharp rise or fall in the seawater level produced by the strong wind and low pressure field of an approaching storm system.A storm tide is a water level rise or fall caused by the combined...A storm surge is an abnormal sharp rise or fall in the seawater level produced by the strong wind and low pressure field of an approaching storm system.A storm tide is a water level rise or fall caused by the combined effect of the storm surge and an astronomical tide.The storm surge depends on many factors,such as the tracks of typhoon movement,the intensity of typhoon,the topography of sea area,the amplitude of tidal wave,the period during which the storm surge couples with the tidal wave.When coupling with different parts of a tidal wave,the storm surges caused by a typhoon vary widely.The variation of the storm surges is studied.An once-in-a-century storm surge was caused by Typhoon 7203 at Huludao Port in the north of the Liaodong Bay from July 26th to 27th,1972.The maximum storm surge is about 1.90 m.The wind field and pressure field used in numerical simulations in the research were derived from the historical data of the Typhoon 7203 from July 23rd to 28th,1972.DHI Mike21 is used as the software tools.The whole Bohai Sea is defined as the computational domain.The numerical simulation models are forced with sea levels at water boundaries,that is the tide along the Bohai Straits from July 18th to 29th(2012).The tide wave and the storm tides caused by the wind field and pressure field mentioned above are calculated in the numerical simulations.The coupling processes of storm surges and tidal waves are simulated in the following way.The first simulation start date and time are 00:00 July 18th,2012; the second simulation start date and time are 03:00 July 18th,2012.There is a three-hour lag between the start date and time of the simulation and that of the former one,the last simulation start date and time are 00:00 July 25th,2012.All the simulations have a same duration of 5 days,which is same as the time length of typhoon data.With the first day and the second day simulation output,which is affected by the initial field,being ignored,only the 3rd to 5th day simulation results are used to study the r展开更多
台风引起的风暴增水严重影响沿海地区的生产生活,是造成经济损失最严重的海洋灾害之一。深圳市位于中国南海北部沿岸,是易受风暴潮灾害影响的区域,对深圳近海海域风暴潮开展研究不仅能够提升对风暴潮物理机制的认识,同时对沿海城市有效...台风引起的风暴增水严重影响沿海地区的生产生活,是造成经济损失最严重的海洋灾害之一。深圳市位于中国南海北部沿岸,是易受风暴潮灾害影响的区域,对深圳近海海域风暴潮开展研究不仅能够提升对风暴潮物理机制的认识,同时对沿海城市有效防灾减灾预警有重要意义。在风暴潮模拟研究过程中,台风气象场是风暴潮模拟准确与否的关键因素。本文针对深圳近海区域海洋环境,以海流模型FVCOM(finite volume community ocean model)和海浪模型SWAN(simulation wave nearshore)为基础,建立了区域风暴潮–波浪耦合模型,分别用再分析气象数据(European center for medium weather forecasting,ECMWF)、理想台风模型(Holland)及大气模型台风模拟结果(weather research and forecast,WRF)作为驱动场条件,对台风“山竹”期间的风暴潮过程进行模拟。结果表明:分辨率较低的ECMWF再分析气象数据难以准确体现台风水平结构,从而导致模拟误差;Holland气象场在整体上能够对台风“山竹”进行准确模拟,但无法再现台风在近岸区域的结构形变,从而导致在蛇口及附近(深圳湾,珠江口内侧)区域的风暴潮模拟水位偏高;WRF对风速、气压、水位、波浪都有较好的模拟效果,且WRF很好的改善了Holland在靠近台风登陆点的区域风暴潮水位偏高的问题,对珠江口、深圳湾区域定量改进约20%~30%。在未来的风暴潮预报中,如果采用类似于Holland这样的理想台风场,需注意上述区域的模拟结果。此外,Holland理想台风场和WRF模型结果驱动下的波浪场模拟效果都较好。展开更多
基金a part of the fund of the project "Study the mechanism of the after-runner storm surge in the north coast of Vietnam by a coupled numerical model and propose the improvement technology of forecasting storm surge under the climate change"Vietnam National Foundation for Science and Technology Development (NAFOSTED)
文摘This report briefly summarizes recent progress in storm surge forecasts, one of topics discussed during the fourth International Workshop on Tropical Cyclone Landfall Process(IWTCLP 4) held during 5-8 December, 2017. In the workshop, improvement of storm surge forecasting system was mainly discussed with relevance to the problem of estimating the impacts of tropical cyclone landfall.To deal with storm surges, accurate TC condition(predictions and forecasts) as input, reasonable storm surge predictions(with forecasting systems), and effective advisories/warnings(i.e. useful information products) are necessary. Therefore, we need to improve storm surge related matters systematically: input, prediction system, and ef fective information.This report tries to highlight recent progress in the field of storm surges in relation to three key points: improvement in storm surge forecasting models/system, TC conditions as input for storm surge predictions, and informative products for end users.
文摘A storm surge is an abnormal sharp rise or fall in the seawater level produced by the strong wind and low pressure field of an approaching storm system.A storm tide is a water level rise or fall caused by the combined effect of the storm surge and an astronomical tide.The storm surge depends on many factors,such as the tracks of typhoon movement,the intensity of typhoon,the topography of sea area,the amplitude of tidal wave,the period during which the storm surge couples with the tidal wave.When coupling with different parts of a tidal wave,the storm surges caused by a typhoon vary widely.The variation of the storm surges is studied.An once-in-a-century storm surge was caused by Typhoon 7203 at Huludao Port in the north of the Liaodong Bay from July 26th to 27th,1972.The maximum storm surge is about 1.90 m.The wind field and pressure field used in numerical simulations in the research were derived from the historical data of the Typhoon 7203 from July 23rd to 28th,1972.DHI Mike21 is used as the software tools.The whole Bohai Sea is defined as the computational domain.The numerical simulation models are forced with sea levels at water boundaries,that is the tide along the Bohai Straits from July 18th to 29th(2012).The tide wave and the storm tides caused by the wind field and pressure field mentioned above are calculated in the numerical simulations.The coupling processes of storm surges and tidal waves are simulated in the following way.The first simulation start date and time are 00:00 July 18th,2012; the second simulation start date and time are 03:00 July 18th,2012.There is a three-hour lag between the start date and time of the simulation and that of the former one,the last simulation start date and time are 00:00 July 25th,2012.All the simulations have a same duration of 5 days,which is same as the time length of typhoon data.With the first day and the second day simulation output,which is affected by the initial field,being ignored,only the 3rd to 5th day simulation results are used to study the r
文摘台风引起的风暴增水严重影响沿海地区的生产生活,是造成经济损失最严重的海洋灾害之一。深圳市位于中国南海北部沿岸,是易受风暴潮灾害影响的区域,对深圳近海海域风暴潮开展研究不仅能够提升对风暴潮物理机制的认识,同时对沿海城市有效防灾减灾预警有重要意义。在风暴潮模拟研究过程中,台风气象场是风暴潮模拟准确与否的关键因素。本文针对深圳近海区域海洋环境,以海流模型FVCOM(finite volume community ocean model)和海浪模型SWAN(simulation wave nearshore)为基础,建立了区域风暴潮–波浪耦合模型,分别用再分析气象数据(European center for medium weather forecasting,ECMWF)、理想台风模型(Holland)及大气模型台风模拟结果(weather research and forecast,WRF)作为驱动场条件,对台风“山竹”期间的风暴潮过程进行模拟。结果表明:分辨率较低的ECMWF再分析气象数据难以准确体现台风水平结构,从而导致模拟误差;Holland气象场在整体上能够对台风“山竹”进行准确模拟,但无法再现台风在近岸区域的结构形变,从而导致在蛇口及附近(深圳湾,珠江口内侧)区域的风暴潮模拟水位偏高;WRF对风速、气压、水位、波浪都有较好的模拟效果,且WRF很好的改善了Holland在靠近台风登陆点的区域风暴潮水位偏高的问题,对珠江口、深圳湾区域定量改进约20%~30%。在未来的风暴潮预报中,如果采用类似于Holland这样的理想台风场,需注意上述区域的模拟结果。此外,Holland理想台风场和WRF模型结果驱动下的波浪场模拟效果都较好。